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Quantum nanofriction in trapped ion chains with a topological defect

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arxiv 2108.07635 v1 pith:3XRMEQMC submitted 2021-08-17 cond-mat.quant-gas physics.atom-phquant-ph

Quantum nanofriction in trapped ion chains with a topological defect

classification cond-mat.quant-gas physics.atom-phquant-ph
keywords quantumaubrydefecteffectstransitiontrappedaspecteffective
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Trapped ion systems constitute a well controllable scenario for the study and emulation of nanofriction, and in particular of Frenkel-Kontorova-like models. This is in particular the case when a topological defect is created in a zigzag ion Coulomb crystal, which results in an Aubry transition from free sliding to pinned phase as a function of the trap aspect ratio. We explore the quantum effects of the Aubry transition by means of an effective simplified model, in which the defect is treated like a single quantum particle that experiences an effective Peierls-Nabarro potential and a position-dependent mass. We demonstrate the relevance of quantum tunneling in a finite range of aspect ratios close the critical point, showing that the quantum effects may be observed in the kink dynamics for sufficiently low temperatures. Finally, we discuss the requirements to reveal quantum effects at the Aubry transition in future experiments on trapped ions.

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